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An apparent Bacillus subtilis folic acid biosynthetic operon containing pab, an amphibolic trpG gene, a third gene required for synthesis of para-aminobenzoic acid, and the dihydropteroate synthase gene.

McDonald and Burke (J. Bacteriol. 149:391-394, 1982) previously cloned a sulfanilamide-resistance gene, sul, residing on a 4.9-kb segment of Bacillus subtilis chromosomal DNA, into plasmid pUB110. In this study we determined the nucleotide sequence of the entire 4.9-kb fragment. Genes identified on the fragment include pab, trpG, pabC, sul, one complete unidentified open reading frame, and one incomplete unidentified open reading frame. The first three of these genes, pab, trpG, and pabC, are required for synthesis of p-aminobenzoic acid. The trpG gene encodes an amphibolic glutamine amidotransferase required for synthesis of both p-aminobenzoate and anthranilate, the latter an intermediate in the tryptophan biosynthetic pathway. The pabC gene may encode a B. subtilis analog of enzyme X, an enzyme needed for p-aminobenzoate synthesis in Escherichia coli. The sul gene probably encodes dihydropteroate synthase, the enzyme responsible for formation of 7,8-dihydropteroate, the immediate precursor of folic acid. All six of the cloned genes are arranged in a single operon. Since all four of the identified genes are needed for folate biosynthesis, we refer to this operon as a folic acid operon. Expression of the trpG gene is known to be negatively controlled by tryptophan. We propose that this regulation is at the level of translation. This hypothesis is supported by the finding of an apparent Mtr-binding site which overlaps with the trpG ribosome-binding site.

4-Aminobenzoic Acid↗

Evaluation of 60-minute blood p-aminobenzoic acid concentration in pancreatic function testing of dogs.

For evaluation of pancreatic function testing, a peptide that releases p-aminobenzoic acid (PABA) on digestion by chymotrypsin was given to clinically normal dogs and to dogs with unexplained diarrhea. Blood concentration of PABA and percentage of PABA excretion in the urine at 6 hours after oral administration were determined. One-hour blood values did not reflect pancreatic exocrine secretion as well as did the 6-hour urinary excretion values.

4-Aminobenzoic Acid↗

Direct and simultaneous high-performance liquid chromatographic assay for the determination of p-aminobenzoic acid and its conjugates in human urine.

Procedures based on high-performance liquid chromatography (HPLC) were developed for identifying and measuring p-aminobenzoic acid (PABA) and its conjugate metabolites in human urine after oral doses of PABA. p-Aminohippuric acid (PAH), PABA, p-acetamidohippuric acid (PAHA) and p-acetamidobenzoic acid (PADB) in urine were resolved and determined by HPLC simultaneously and directly without extraction. A mobile phase consisting of 3% (v/v) acetonitrile in distilled water containing 0.005 M 1-heptanesulphonic acid in glacial acetic acid (PIC-B7) at pH 3.3 was eluted at 1 ml/min through a C18 Spherisorb column, followed by UV detection at 280 nm. After hydrolysis of urine samples at 37 degrees C for 3 h with beta-glucuronidase, the amounts of PABA-glucuronide and PADB-glucuronide were also determined. The retention times of PAH, a dominant peak which disappeared after hydrolysis, PABA, DABA (3,5-diaminobenzoic acid, as the internal standard), PAHA and PADB were 11.8, 14, 15, 18, 24 and 46 min, respectively. The 24-h urinary recoveries of PAH, PAHA, PADB, PADB-glucuronide, PABA and PABA-glucuronide after separate oral doses of 200 and 800 mg of PABA in one healthy subject were 43.4 and 48.1, 7 and 29.1, 11.2 and 11.8, 34.8 and 6.6, 0.2 and 0.3, and 1.0 and 2.4%, respectively. It is interesting that at high dose (800 mg) saturation of glucuronidation of PADB (N-acetylated PABA) appeared to occur, which resulted in an increase in the formation of PAHA, the glycine conjugate of PADB. Over 90% of the oral dose was accounted for by 8 h after administration.

4-Aminobenzoic Acid↗

Measurement of the uptake of radioactive para-aminobenzoic acid monitors folate biosynthesis in Escherichia coli K-12.

This study was undertaken to develop a method for rapidly and easily estimating the folate content of different strains of Escherichia coli. Cells were grown to stationary phase in medium containing radioactive para-aminobenzoic acid. The amount of label incorporated into cells was measured by collecting the cells on a filter, washing, and then determining the radioactivity retained on the filter. The addition of unlabeled para-aminobenzoic acid or the antifolate drugs sulfathiazole or trimethoprim reduced the uptake of the radioactive compound. These results indicate that uptake measurements monitored folate biosynthesis. The assay is well suited for the analysis of large numbers of samples and does not require specialized equipment.

4-Aminobenzoic Acid↗

New analytical procedure based on a cellulose bag and ionic exchanger with p-aminobenzoic acid groups for differentiation of labile and inert metal species in aquatic systems.

A new procedure was developed for the in situ characterization of the lability of metal species in aquatic systems by using a system equipped with a diffusion membrane and cellulose organomodified with p-aminobenzoic acid groups (DM-Cell-PAB). To this end, the DM-Cell-PAB system was prepared by adding cellulose organomodified with p-aminobenzoic acid groups (Cell-PAB) to pre-purified cellulose bags. After the DM-Cell-PAB system was sealed, it was examined in the laboratory to evaluate the influence of complexation time, mass of exchanger, pH, metal ions (Cu, Cd, Fe, Mn, and Ni), and concentration of organic matter on the relative lability of metal species. It was found that the pH and kinetics strongly influence the process of metal complexation by the DM-Cell-PAB system. At all pH levels, Cd, Mn, and Ni showed lower complexation with Cell-PAB resin than Cu and Fe metals. Note that relative lability of metals complexed to aquatic humic substances (AHS) in the presence of Cell-PAB resin showed the following order: Cu approximately or = Fe>>Ni>Mn=Cd. The results presented here also indicate that increasing the AHS concentration decreases the lability of metal species by shifting the equilibrium to AHS-metal complexes. Our results indicate that the system under study offers an interesting alternative that can be applied to in situ experiments for differentiation of labile and inert metal species in aquatic systems.

4-Aminobenzoic Acid↗

Proof of chymotrypsin activity by a peroral test using a synthetic peptide with a C-terminal P-aminobenzoic acid residue.

The reciprocal relationship between the peroral dose and urinary excretion and the optimum testing load of para-aminobenzoic acid (PABA) and N-acetyl tyrosine peptide (Ac-L-Tyr-PABA), alone and after cholecystokinin-pancreozymin and secretin hormonal stimulation, was studied in rats. Between the peroral test dose of PABA and its urinary excretion there is a constant proportionality which is correlated to the size of the dose and is linear in the dose range up to 50 mg/kg b.w. The situation for Ac-L-Tyr-PABA is similar. Dosage of over 50 mg/kg b.w. do not lead to proportional excretion of the test substance in the urine. I.v. stimulation by cholecystokinin-pancreozymin and secretin, using peroral administration of Ac-L-Tyr-PABA, was not followed by a significant increase in urinary PABA excretion. The optimum peroral load of both PABA and Ac-L Tyr-PABA in the rat is 50 mg/kg b.w. With this dose, 82% of free PABA and 77% of the model peptide PABA excreted in 24 hours is found in the urine after 6 hours, so that for practical purposes this interval is adequate. The findings furnish important information on the possibilities of utilizing the given technique for diagnosing the state of exocrine pancreatic function in clinical practice.

4-Aminobenzoic Acid↗

Molecular structure of 3-aminobenzoic acid complexes with alkali metals.

The vibration (FT-IR, FT-Raman), electronic (UV-Vis) and NMR (1H and 13C) spectra for 3-aminobenzoic acid and its alkali metal salts were recorded. The influence of lithium, sodium, potassium, rubidium and cesium on the electronic system of the 3-aminobenzoic acid was studied. The assignment of the vibration spectra was done. Characteristic shifts of band wavenumbers and changes in band intensities along the metal series were observed. Good correlation between the wavenumbers of the vibrational bands in the IR and Raman spectra for 3-aminobenzoates and ionic potential, electronegativity, atomic mass and affinity of metal cations were found. The chemical shifts of protons (1H NMR) and carbons (13C NMR) in the series of studied alkali metals were also observed. Optimized geometrical structures of studied compounds were calculated by ab initio and density functional methods.

Aminobenzoates↗

Observation of rotamers of m-aminobenzoic acid: zero kinetic energy photoelectron and hole-burning resonantly enhanced multiphoton ionization spectroscopy.

We report studies of supersonically cooled m-aminobenzoic acid using two-color resonantly enhanced multiphoton ionization (REMPI) and two-color zero kinetic energy (ZEKE) photoelectron spectroscopy. Two conformers have been identified and characterized using the hole-burning method in the REMPI experiment. With the aid of ab initio and density functional calculations, vibrational modes of the first electronically excited state (S(1)) of the neutral species and those of the ground state cation (D(0)) have been assigned, and the adiabatic ionization potentials have been determined for both conformers. The REMPI spectra are dominated by in-plane motions of the substituents and ring deformation modes. A propensity of Deltav=0, where Deltav is the change in vibrational quantum number from the S(1) to the D(0) state, is observed in the ZEKE spectra. The origin of this behavior is discussed in the context of electron back donation from the two substituents in the excited state and in the cationic state. Comparisons of these results with those of p-aminobenzoic acid will be analyzed.

Journal Article↗

[Para-aminobenzoic acid intensification of DNA repair processes in Escherichia coli K-12].

Studies of the role of physiologically active natural compound, para-aminobenzoic acid (PABA) in genetic processes showed that PABA interacts with bacterial DNA and strongly increases the effectiveness of repair processes under the mutagenic action of NMU, NEU, MMS and EMS. These properties of PABA differentially depended on the activity of enzymatic systems fo DNA repair and were most pronounced in repair-proficient strains of Escherichia coli. For example, the cooperative action of E. coli (wild type) of both NMU and PABA led to enhanced viability (13-100 times higher) and decreased the rate of induced reversions (5-60 times lower), in comparison with mutagenic action of "pure" NMU. Therefore, the specific function of PABA was called "reparagenic" and PABA itself "reparagen". UV-spectroscopy and nuclear-magnetic resonance were used to have revealed that PABA does not interact with MMS and NMU in vitro and does not change the rate of the mutagen's hydrolysis. Used in a wide range of concentrations, PABA induces no mutations in bacterial cells and does not increase the rate of genetic recombination. The discovery of the role of PABA in repair process opens up the possibility of examining the interaction between the DNA in a complex with reparagen as well as the dominant and recessive genes of the repair process.

4-Aminobenzoic Acid↗

Identification of a substance, previously shown to enhance mitogenesis of human lymphocytes, as the acetamide of p-aminobenzoic acid.

We characterize here an arachidonic acid (AA)-derived metabolite previously found to have an adjuvant effect in phytohemagglutinin-induced mitogenesis of lymphocytes from mothers of newborn babies and from immunodeficient infants. We named the metabolite 'compound 4' due to its position in a thin-layer chromatography system developed for isolation of eicosanoids. The compound was originally found to be produced by peripheral blood mononuclear leukocytes and the T cell leukemia line Jurcat after long-term (18-24 h) incubation with [1-14C]AA. Compound 4 is also produced by lymphocytes, monocytes, platelets, thrombocytes, cultured fibroblasts and various types of malignant cell lines. We purified this metabolite by means of high pressure liquid chromatography with synchronous detection of radioactivity and measurement of ultraviolet-light absorption at 278 nm. Proton nuclear magnetic resonance spectroscopy and mass spectrometry with electron impact techniques demonstrated that compound 4 is not an eicosanoid, but is identical to p-acetamidobenzoic acid (PACBA). The cells synthesize PACBA from p-aminobenzoic acid and a two-carbon residue from AA.

4-Aminobenzoic Acid↗

Side effects of laser therapy, modified by ultraviolet irradiation and para-aminobenzoic acid in mice.

Scarring is a well-known side-effect of cutaneous laser treatment and exposure to solar ultraviolet radiation is suspected to increase scar formation. We investigated how wounds and scarring were modified by interfering in the laser-induced inflammation using ultraviolet radiation and para-aminobenzoic acid. A copper vapour laser operating at 578 nm was used at three different intensities and doses. The ultraviolet radiation was administered three times weekly prior to and four times weekly after the laser treatment. The daily dose was 21.5 kJ/m2 equivalent to 3.5 Basic-MED. The laser-induced wounds were evaluated daily and histological and biochemical analyses were used to estimate scarring. Ultraviolet irradiation resulted at some of the used laser intensities in decreased scores of maximum wound area, wound healing time, cumulated wound area, and a decreased skin content of hydroxyproline, whereas the degree of the chronic fibrosis tended to increase. Application of para-aminobenzoic acid before the solar ultraviolet irradiation did not change the acute wound scores but reduced, although not significantly, the degree of fibrosis.

4-Aminobenzoic Acid↗

Biosynthesis of N-benzoyl-L-tyrosyl-p-aminobenzoic acid hydrolase: disulfide-linked dimers are formed at the site of synthesis in the rough endoplasmic reticulum.

N-Benzoyl-L-tyrosyl-p-aminobenzoic acid hydrolase (PPH) is a metalloendopeptidase found in mucosal epithelial cells of the human small intestine. The purification and characterization of this enzyme was described in the preceding paper (E. E. Sterchi et al. (1988) Arch. Biochem. Biophys. 265, 105-118). In this paper, we report on the biosynthesis and posttranslational processing of PPH in organ cultures of human small intestinal mucosa. Continuous labeling for 6 h with L-[35S]methionine, immunoprecipitation with monoclonal antibody 3/716/36, and analysis by sodium dodecyl sulfate-polyacrylamide gel electrophoresis revealed a polypeptide with Mr 100,000. This molecule was highly glycosylated as treatment with endo-beta-N-acetylglucosaminidase F resulted in a reduction to Mr 70,000. This was also the size of the species isolated after culture in the presence of tunicamycin, an inhibitor of N-linked glycosylation. Pulse-chase labeling showed that the first detectable form of PPH had a Mr 90,000 which corresponded to the high-mannose precursor as assessed by its sensitivity to endo-beta-N-acetylglucosaminidase H. Within 15 min of chase and prior to complex glycosylation, dimerization due to the formation of interchain disulfide bonds occurred (Mr 180,000). Dimerization thus took place within the rough endoplasmic reticulum and might play an important role in the transport through to the cell surface. After 2 h of chase, PPH started to appear in the culture medium, indicating that the enzyme was secreted from the cells, a finding not observed with other microvillus membrane hydrolases.

4-Aminobenzoic Acid↗

Collision-induced fragmentation of negative ions from N-linked glycans derivatized with 2-aminobenzoic acid.

N-Linked glycans from bovine ribonuclease B, chicken ovalbumin, bovine fetuin, porcine thyroglobulin and human alpha(1)-acid glycoprotein were derivatized with 2-aminobenzoic acid by reductive amination and their tandem mass spectra were recorded by negative ion electrospray ionization with a quadrupole time-of-flight mass spectrometer. Derivatives were also prepared from 2-amino-5-methyl- and 2-amino-4,5-dimethoxybenzoic acid in order to confirm the identity of fragment ions containing the reducing terminus. Major fragments from the [M - H](-) ions from the neutral glycans retained the derivative (Y-type cleavages) and provided information on sequence and branching. Other major fragments were products of A-type cross-ring cleavages giving information on antenna structure. Singly doubly and triply charged ions were formed from sialylated glycans. They produced major fragments by loss of sialic acid and a series of singly charged ions that were similar to those from the neutral analogues. Doubly charge ions were also produced by the neutral glycans and were fragmented to form product ions with one and two charges. Again, the fragment ions with a single charge were similar to those from the singly charged parents, but branching information was less obvious because of the occurrence of more abundant ions produced by multiple cleavages. Detection limits were around 200 fmol (3 : 1 signal-to-noise ratio).

Carbohydrate Sequence↗

Effect of p-aminobenzoic acid N-xyloside sodium salt (K-247) on metabolism and functions of normal lymphocytes and leukemic cells.

An N-xyloside derivative of p-aminobenzoic acid, K-247, was investigated for the ability to induce changes of Phospholipid metabolism and membrane transport in murine splenic lymphocytes and leukemic cells. K-247 induced an increase of [3H] methyl group incorporation into phospholipid in both normal lymphocytes and leukemic cells (L-1210 and M1 cells). However, K-247 accelerated the turnover of phosphatidylinositol (PI) measured by [32P] incorporation into PI in L-1210 cells and Ml cells but not in normal lymphocytes. 45Ca2+ influx into normal lymphocytes and leukemic cells was also increased by K-247. A methyltransferase inhibitor, 5'-deoxy-5'-S-isobutyl adenosine (SIBA), suppressed both the increase of phospholipid methylation and that of Ca2+ influx. It seemed that Ca2+ transport might be regulated by membrane phospholipid methylation. On the other hand, K-247 was found to suppress [3H] aminoisobutylic acid (AIB) uptake into L-1210 cells and Ml cells. Protein synthesis in L-1210 cells and Ml cells slightly decreased but RNA and DNA syntheses in both normal and leukemic cells were not affected by K-247. These results suggest that K-247 mainly acts on cell membranes, which are more sensitive to K-247 in leukemic cells than in normal lymphocytes. K-247 also induced differentiation of Ml cells into macrophages and granulocytes with phagocytic activity and morphological characteristics. Moreover, K-247 elevated the Con A response of murine thymocytes, most of which were immature T cells and had low reactivity to Con A, and caused a decrease of Thy 1.2 antigen on thymocytes. It seemed that K-247 also affected maturation of thymocytes.

4-Aminobenzoic Acid↗

P-Aminobenzoic acid derivatives as inhibitors of the cell-free H2-pteroate synthesizing system of Escherichia coli.

A heterogeneous series of compounds, derived from p-aminobenzoic acid (PABA), has been investigated for their PABA-antagonistic potency in a cell-free H2-pteroate synthesizing system of E. coli. A prerequisite of compounds, other than sulfones or sulfonamides, to compete with PABA for the enzyme H2-pteroate synthetase appeared to be the presence of a p-aminobenzoyl moiety. Substitution of the carboxyl group of PABA by an ester, an amide, or a ketone function, however, strongly reduces the ability to interact with the PABA binding site on the enzyme. This decrease in affinity probably has to be ascribed to the inability to create a sufficient negative charge in the carbonyl part of these p-aminobenzoyl derivatives. The relatively high affinities of L-PABG (16), PABP (22), and the alpha-phenyl derivative of 22, as compared with the other substituted p-aminobenzamides and p-aminobenzene-1-alkanones, are explained by assuming that these compounds, besides interfering with the PABA receptor site, also interact with an accessory area on the enzyme.

4-Aminobenzoic Acid↗